In this paper it is shown that solid-state cadmiumzinc- telluride (CZT) is a promising photon detector for neutron spectroscopy in a wide energy interval, ranging from thermal (~ 25 meV) to epithermal (~ 70 eV) neutron energies. In the present study two CZT detectors were tested as part of the inverse-geometry neutron spectrometer VESUVIO operating at the ISIS pulsed neutron source. The response of the CZT detector to photon emission from radiative neutron capture in 238U was determined by biparametric measurements of neutron time of flight and photon energy. The scattering response function F(y) from a Pb sample has been derived using both CZT and conventional 6Li-glass scintillator detectors. The former showed both an improved signal to background ratio and higher efficiency as compared to 6Li glass, allowing us to measure F(y) up to the fourth 238U absorption energy (Er = 66.02 eV). Due to the small size of CZT detectors, their use is envisaged in arrays, with high spatial resolution, for neutron-scattering studies at high energy (h?>1 eV) and low wavevector (q < 10 °A-1) transfers.

CdZnTe gamma detector for deep inelastic neutron scattering on the VESUVIO spectrometer

2004

Abstract

In this paper it is shown that solid-state cadmiumzinc- telluride (CZT) is a promising photon detector for neutron spectroscopy in a wide energy interval, ranging from thermal (~ 25 meV) to epithermal (~ 70 eV) neutron energies. In the present study two CZT detectors were tested as part of the inverse-geometry neutron spectrometer VESUVIO operating at the ISIS pulsed neutron source. The response of the CZT detector to photon emission from radiative neutron capture in 238U was determined by biparametric measurements of neutron time of flight and photon energy. The scattering response function F(y) from a Pb sample has been derived using both CZT and conventional 6Li-glass scintillator detectors. The former showed both an improved signal to background ratio and higher efficiency as compared to 6Li glass, allowing us to measure F(y) up to the fourth 238U absorption energy (Er = 66.02 eV). Due to the small size of CZT detectors, their use is envisaged in arrays, with high spatial resolution, for neutron-scattering studies at high energy (h?>1 eV) and low wavevector (q < 10 °A-1) transfers.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/1730
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